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Let's have a simple code as below

public class Sandbox {

    public static void run(String[] args) {
        int i = Integer.MAX_VALUE;
        int j = i+1;
        System.out.println(i);
        System.out.println(j);
    }
}

This will print output

2147483647

-2147483648

Value at j is overlowed without any notice to me when the code is executed.

I use Netbeans IDE to run this code.

Is it possible to configure the system to notify us when such arithmetic overflow occurs?

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3  
You have to use if-else for this, to check for overflow manually.. Also,you have to create your own exeption. –  Rohit Jain Oct 14 '12 at 7:45

2 Answers 2

up vote 3 down vote accepted

See the last sentence in the Java Language Specification (Chapter 15.18.2. Additive Operators (+ and -) for Numeric Types) :

Despite the fact that overflow, underflow, or loss of information may occur, evaluation of a numeric additive operator never throws a runtime exception.

For a lengthy article on this problem and the presentation of a tool for workaround see the article Signalling Integer Overflows in Java.

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As Rohit Jain mentioned, you have to check it manually, something like this:

if ( j < Integer.MIN_VALUE ||  j> Integer.MAX_VALUE ) 
 throw new RuntimeException("Underflow/Overflow occured");

However , if the fluctuation becomes so high that the result comes back in the range, it will not be caught.

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